1

I have parent-child classes in two different packages. I am overriding a method of protected type. I want to access super class protected method in subclass.

Consider below code:

package package1;

public class Super
{
    protected void demoMethod()
    {
        System.out.println("In super method");
    }
}

package package2;

import package1.Super;

public class Sub extends Super
{
    @Override
    protected void demoMethod()
    {
        System.out.println("In sub method");
    }

    public static void main(String[] args) 
    {
        //code for accessing superclass demoMethod to print "In super method"
    }
}

In the main method of sub class, I want to access super class demoMethod which prints "In super method". I know demoMethod won't be visible from sub class using super class object reference to call demoMethod.

Is it possible or not? If yes, how?

Consider me new to Java and provide answers replacing comment in main method.

0

Your main() method cannot access the superclass implementation of demoMethod() -- because it's overridden in the child class.

Your main() method can access demoMethod(), through a reference of the subclass type, even though it's protected, because it's in the same package as your subclass. But it will call the subclass implementation.

But if you're "using superclass object reference to call demoMethod", the method will not be accessible, and your code will not compile. Your superclass is in a different package. Methods marked protected can only be accessed by subclasses and by code in the same package.

If you made the method public in both subclass and superclass, calling demoMethod() would call the subclass implementation, regardless whether the reference was of the super or subclass type.

An instance of the subclass can call super.demoMethod() as part of the implementation of its methods. But the main() method cannot.

  • So what am I asking is not possible, right ? Thanks for elaborating. – Darshan Parikh Jul 5 '17 at 19:47
  • yes, as long as the method in this case is protected or public – MaxPower Jul 5 '17 at 19:49
  • Not with your current access qualifiers and method implementations. If Super.demoMethod() were public, you could call it from package2 on an instance of Super, since Super is not declared abstract. But I'm guessing you want to create an object of type Sub. The main() method cannot call the superclass implementation, but an instance method of Sub could. – Andy Thomas Jul 5 '17 at 19:51
  • Thanks for clarifying Andy. (y) – Darshan Parikh Jul 5 '17 at 19:56
2

In the child class use super.demoMethod() or just remove it altogether from the child class

  • Neither of these approaches will work if the OP is, as stated, "using superclass object reference to call demoMethod". The superclass method would be inaccessible. Note that it's in a different package. – Andy Thomas Jul 5 '17 at 19:54
  • Agreed, it would not work from the main method because it is static – MaxPower Jul 5 '17 at 19:54
  • It has nothing to do with main() being static. In this case, the main() method is in a different package. It can't access protected members from a different package. – Andy Thomas Jul 5 '17 at 19:58
  • protected allows you access from the same package, or parent classes. – MaxPower Jul 5 '17 at 19:59
  • 1
    protected allows access within the same package, or by subclasses. Neither is the case when using a superclass object reference. This will cause an error: Super sup = new Sub(); sup.demoMethod(). More details are in the Java Language Specification in section 6.6.2: Details on protected access: "A protected member or constructor of an object may be accessed from outside the package in which it is declared only by code that is responsible for the implementation of that object." – Andy Thomas Jul 5 '17 at 20:11

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